Claims
- 1. A cell comprising a negative and a positive terminal, and an outer housing having a pair of opposing flat sides running along a portion of the length of said housing; said housing having a closed end and opposing open end; said cell further comprising an anode and a cathode within said housing, a separator between said anode and cathode, and an end cap assembly sealing the open end of said housing;
wherein the cathode comprises at least one cathode slab having an opening defined therethrough devoid of cathode material, with at least a portion of the outer surface of said cathode contacting the inside surface of said housing, wherein the boundary perimeter defining said opening within the cathode slab has an elongated configuration.
- 2. The cell of claim 1 wherein at least a portion of said opening within said cathode slab forms a cavity for housing said anode.
- 3. The cell of claim 2 wherein at least a portion of said boundary perimeter defining said opening within the cathode slab is curved.
- 4. The cell of claim 2 wherein said cathode slab has rectangular shape and said boundary perimeter defining said opening within said slab has an oblong configuration.
- 5. The cell of claim 2 wherein said boundary perimeter defining said central opening within the cathode slab has a long dimension (D1) defining the length of said opening and a short dimension (D2) defining the width of said opening.
- 6. The cell of claim 5 wherein the ratio of said long dimension (D1) to said short dimension (D2) is greater than 1.0.
- 7. The cell of claim 1 wherein the overall thickness of said cell is between about 5 and 10 mm, wherein said overall thickness is defined as the distance between the outside surface of opposing sides of said housing defining the short dimension of said housing.
- 8. The cell of claim 1 wherein said housing is of cuboid shape; wherein said cathode comprises a plurality of cathode slabs of rectangular shape, each slab having an opening defined therethrough devoid of cathode material; wherein said slabs are aligned so that said openings are in alignment forming a core devoid of cathode material, with the outer surface of said cathode contacting the inside surface of said housing.
- 9. The cell of claim 1 wherein the cell is an alkaline cell and the anode comprises zinc and the cathode comprises manganese dioxide.
- 10. The cell of claim 9 wherein said cell is a primary alkaline cell.
- 11. The alkaline cell of claim 10 wherein the cell is electrochemically balanced so that the cathode is in excess such that the ratio of theoretical mAmp-hr capacity of the MnO2 based on a theoretical specific value of 370 mAmp-hr per gram MnO2, divided by the mamp-hr capacity of zinc based on a theoretical specific value of 820 mAmp-hr per gram zinc, is between about 1.2 and 2.0.
- 12. A primary alkaline cell comprising a negative and a positive terminal, and an outer housing of cuboid shape, said housing having a closed end and opposing open end, said cell further comprising an anode comprising zinc and a cathode comprising MnO2 within said housing, a separator between said anode and cathode, and an end cap assembly sealing the open end of said housing;
wherein the cathode comprises a plurality of rectangular shaped cathode slabs; wherein each of said slabs has a central opening devoid of cathode material; wherein said cathode slabs are stacked within the housing along the cell's central longitudinal axis so that said openings devoid of cathode material form a continuous central core along said longitudinal axis, with the outer surface of said cathode contacting the inside surface of said housing; wherein the boundary perimeter defining said central opening within the cathode slabs has an elongated configuration.
- 13. The alkaline cell of claim 12 wherein at least a portion of said central opening within said cathode slabs forms a cavity for housing said anode.
- 14. The alkaline cell of claim 13 wherein at least a portion of said boundary perimeter defining said central opening within the cathode slabs is curved.
- 15. The alkaline cell of claim 13 wherein said boundary perimeter defining said central opening within a rectangular cathode slab has an elongated configuration with a long dimension (D1) defining the length of said opening and a short dimension (D2) defining the width of said opening.
- 16. The alkaline cell of claim 15 wherein the ratio of said long diameter (D1) to said short diameter (D2) is greater than 1.0.
- 17. The alkaline cell of claim 16 wherein said boundary defining said central opening has an oblong configuration.
- 18. The alkaline cell of claim 12 wherein said end cap assembly comprises a rectangular end plate forming said negative terminal.
- 19. The alkaline cell of claim 13 wherein the anode is located within said central opening with the separator between said anode and said cathode.
- 20. The alkaline cell of claim 12 wherein the cell comprises alkaline electrolyte comprising an aqueous solution of potassium hydroxide.
- 21. The alkaline cell of claim 12 wherein the cell is electrochemically balanced so that the cathode is in excess such that the ratio of theoretical mAmp-hr capacity of the MnO2 based on a theoretical specific value of 370 mAmp-hr per gram MnO2, divided by the mAmp-hr capacity of zinc based on a theoretical specific value of 820 mAmp-hr per gram zinc, is between about 1.15 and 2.0.
- 22. The alkaline cell of claim 12 wherein the cell is balanced so that the cathode is in excess such that the ratio of theoretical capacity of the MnO2 based on a theoretical specific value of 370 mamp-hr per gram MnO2, divided by the mamp-hr capacity of zinc based on a theoretical specific value of 820 mamp-hr per gram zinc, is between about 1.2 and 2.0.
- 23. The alkaline cell of claim 12 wherein the cell is balanced so that the cathode is in excess such that the ratio of theoretical capacity of the MnO2 based on a theoretical specific value of 370 mAmp-hr per gram MnO2, divided by the mAmp-hr capacity of zinc based on a theoretical specific value of 820 mAmp-hr per gram zinc, is between about 1.4 and 1.8.
- 24. The alkaline cell of claim 12 wherein said cell has an overall thickness of between about 5 and 10 mm, wherein said overall thickness is defined as the distance between the outside surface of opposing sides of said housing defining the short dimension of said housing.
- 25. The alkaline cell of claim 19 wherein the end cap assembly has a vent mechanism therein which activates when the gas pressure within the cell reaches a level between about 100 and 300 psig (6.895×105 and 20.69×105 pascal gage) allowing gas from within the cell to escape from the cell interior to the external environment.
- 26. The alkaline cell of claim 25 wherein the end cap assembly has a second vent mechanism therein which activates when the gas pressure within the cell reaches a level between about 400 and 800 psig (2758×103 and 5515×103 pascal).
- 27. The alkaline cell of claim 12 wherein the housing comprises metal having a wall thickness of between about 0.30 mm and 0.45 mm.
- 28. The alkaline cell of claim 12 wherein the housing comprises metal having a wall thickness of between about 0.30 mm and 0.50 mm.
- 29. The alkaline cell of claim 12 wherein said housing comprises steel.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation in part of application Ser. No. 10/336261 filed Jan. 3, 2003.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10336261 |
Jan 2003 |
US |
Child |
10417363 |
Apr 2003 |
US |